Differential amplifiers, clock generator circuits, delay lines and methods

ABSTRACT

A differential amplifier may be configured to have a duty cycle and/or gain that is adjustable, such as by adjusting the switch points of circuitry in the differential amplifier. The differential amplifier may alternatively or additionally have a hysteresis function by, for example, using a signal feedback from the output of the amplifier to adjust the switch points of circuitry in the differential amplifier. The differential amplifier may be used for a variety of purposes, such as in an input buffer or delay line, either of which may be used, for example, in a clock generator circuit.

CROSS-REFERENCE TO RELATED APPLICATION

This application is a divisional of U.S. patent application Ser. No.12/899,444, filed Oct. 6, 2010, issued as U.S. Pat. No. 8,729,941 on May20,2014. This application and patent are each incorporated herein byreference, in their entirety, for any purpose.

TECHNICAL FIELD

Embodiments of this invention relate generally to clock signalgenerators, and more specifically, to clock signal generators in whichthe duty cycle of a generated clock signal may be corrected.

BACKGROUND OF THE INVENTION

Clock signals may be used in electronic circuits for timing theoperation of various internal circuits. For example, in synchronousmemory devices, external clock signals may be provided to a memorydevice and internally distributed to various circuits so that internaloperations in the memory device can be synchronized to the operation ofexternal devices. Examples of such synchronous integrated circuitsinclude synchronous memory devices such as synchronous dynamic randomaccess memories (“SDRAMs”), synchronous static random access memories(“SSRAMs”), and packetized memories like SLDRAMs and RDRAMs, and includeother types of integrated circuits as well, such as microprocessors.

A number of different approaches have been used to synchronize internalclock signals to external clock signals, including the use ofdelay-locked loops (“DLLs”). Although a single clock edge transition,such as the rising edge of clock signals, may be used to control thetiming of internal operations, both the rising edges and the fallingedges of clock signals may also be used for this purpose. However, asthe frequency of clock signals increase, variations in the duty cycle ofclock signals may introduce unacceptable timing errors. Clock signalsmay ideally have a duty cycle of 50% so that the timing of internaloperations synchronized to both the rising and falling edges of theclocks signals are equally spaced in time from each other. However, insome applications a duty cycle of other than 50% may be desired.Variations in the duty cycle from a specific value may introduce timingerrors because operations that are synchronized to the falling edges ofthe clock signals may occur too early or too late relative to theoccurrence of operations that are synchronized to the rising edge of theclock signals. For example, if the rising edges of a clock signal areused to output odd bits of read data from a memory device and thefilling edges of the clock signal are used to output intervening evenbits of read data, variations in the duty cycle may vary the period oftime that valid read data bits are output from the memory device. Yetthe duration of the period that valid read data must be provided, aparameter known as the “output hold time” and abbreviated “tOH,” mayhave a specified minimum value. Variations in the duty cycle of a clocksignal used in this manner may therefore cause the memory device to failto meet required performance specifications.

Duty cycle correction circuits have been developed to correct duty cyclevariations to a 50% or some other specific duty cycle. Prior art dynamicduty cycle or tOH correction circuits may correct the duty cycle bydelaying a clock signal and adjusting the magnitude of the delay. Thisdelay may be provided by coupling the clock signal through a largenumber of series-coupled logic gates or inverters, and the delay may beadjusted by varying the number of gates or inverters through which theclock signal is coupled. Unfortunately, coupling, clock signals,particularly high frequency clock signals, through a large number ofgates or inverters may consume substantial power because power may beconsumed as each of many gates or inverters switches responsive to eachtransition of the clock signal. Therefore, prior art duty cyclecorrection circuits used in clock generators and other circuits mayconsume excessive power.

BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 is a block diagram of a prior art clock generator circuit.

FIG. 2 is a block diagram of an embodiment of a clock generator circuit.

FIG. 3 is a block diagram of another embodiment of a clock generatorcircuit.

FIG. 4 is a schematic diagram of one embodiment of a differentialamplifier.

FIG. 5 is a graph showing, the duty cycle of the differential amplifierof FIG. 4 as a function of control voltage.

FIG. 6 is a schematic diagram of another embodiment of a differentialamplifier.

FIG. 7 is a graph showing the duty cycle of the differential amplifierof FIG. 6 as a function of both control voltages.

FIG. 8 is a graph showing the gain of the differential amplifier of FIG.6 as a function of both control voltages.

FIG. 9 is a logic diagram showing an embodiment of an input bufferhaving hysteresis functionality.

FIG. 10 is a schematic diagram of another embodiment of a differentialamplifier that may have an adjustable duty cycle and gain as well ashysteresis functionality.

FIG. 11 is a logic diagram showing an embodiment of an input bufferusing the differential amplifier of FIG. 10.

DETAILED DESCRIPTION

FIG. 1 illustrates an embodiment of a prior art clock generator circuit10 having a first node 14 receiving an external clock signal Clk and asecond clock node 16 receiving a complementary external clock signalClkF. These clock signals may be provided to respective inputs of adifferential input buffer 20, which may output a single clock signal C1.The clock signal C1 output from the buffer 20 may have a rising edgesynchronized to the rising edge of the clock signal Clk and a fallingedge synchronized to the rising edge of the complementary clock signalClkF.

The clock signal C1 may be applied to the input of a delay-locked loop(DLL) 30, which delays the clock signal C1 to generate a delay clocksignal C2. The magnitude of the delay provided by the DLL 30 may becontrolled by a phase detector 34, which receives a feedback clocksignal FB from a model delay circuit 38. As is well known in the art,the model delay circuit 38 may compensate for delays in the input buffer20 and in an output buffer 40. The phase detector 34 may compare thephase of the feedback clock signal FB with the phase of the externalclock signal Clk, The phase detector 34 may then control the delayprovided by the DLL 30 so that the feedback clock signal FB may be inphase with the external clock signal Clk.

The delayed clock signal C2 may be provided to a duty cycle correction(“DCC”) circuit 50, which may be controlled by a DCC control circuit 44.As explained above, the DCC may include a substantial number of logicgates through which the delayed clock signal C2 may propagate, and itmay adjust the number of gates through which the delayed clock signal C2propagates to ensure that the duty cycle of a corrected clock signal C3is substantially 50% or some other specific value of duty cycle. Insofarat the DCC may be continuously adjusted, it may correct dynamic dutycycle errors, which are duty cycle errors that may change as a resultof, for example, changes in the temperature or supply voltage of theclock generator circuit 10.

The duty cycle of a corrected clock signal C3 may be provided to astatic trim circuit 60, which may correct duty cycle errors that do notchange with time but may result from, for example, process variations.The correction provided by the static trim circuit 60 may be adjustedduring manufacture by, for example, opening fusible links or programminganti-fuses or the like. The static trim circuit 60 may then output acorrected clock signal C4 to the output buffer 40, which outputs asynchronized clock signal ClkOut.

As mentioned above, the large number of logic gates commonly used in theDCC 50 and/or the static trim circuit 60 may cause the clock generatorcircuit 10 to consume a substantial amount of power. An embodiment of aclock generator circuit 100 shown in FIG. 2 may consume substantiallyless power than prior an clock generator circuits. The clock generatorcircuit 100 may include many of the same components that are in theclock generator circuit 10 of FIG. 1. Therefore, in the interest ofbrevity and clarity, the same reference numerals will be used, and anexplanation of their structure and operation will not be repeated. Theclock generator circuit 100 differs from the clock generator circuit 10by including a differential amplifier used as an input buffer 110 thatmay be controlled by a DCC Detect & Control circuit 120 to adjust theduty cycle of the clock signal C1. As a result, a clock, signal C5applied to the output buffer 40 may have substantially no duty cycleerror, i.e., the duty cycle may be substantially 50%, or it may havesome other specific duty cycle. Therefore, the clock generator circuit100 may dispense with the DCC 50 and the static delay circuit 60 used inthe prior art clock generator circuit 10. Therefore, the clock generatorcircuit 100 does not consume the substantial power consumed by switchinga large number of logic gate generally used in prior art DCCs 50 andstatic delay circuits 60.

The DCC Detect & Control circuit 120 is able to generate a controlsignal VDty for the input buffer 110 by processing a feedback clocksignal FB from the model delay circuit 38. The control signal VDty maythen adjust the duty cycle of the a feedback clock signal FB so that ithas a substantially 50% or some other duty cycle. In making thisadjustment, the DCC Detect & Control circuit 120 and input buffer 110may compensate for any duty cycle skews generated in the DLL 30 sincethe duty cycle of the clock signal C1 applied to the DLL 30 may beadjusted to whatever duty cycle makes the duty cycle of the feedbackclock signal FB substantially 50% or some other specific duty cyclevalue.

Another embodiment of a clock generator circuit 150 is shown in FIG. 3.Again, the clock generator circuit 150 may include many of the samecomponents that are in the clock generator circuit 100 of FIG. 2, sothat the same reference numerals will be used for those components, anda detailed explanation of them will not be repeated. Rather than using aDCC adjusting differential amplifier in the input buffer 110 as in theembodiment of FIG. 2, the clock generator circuit 150 uses a DCCadjusting differential amplifier in another portion of the clock forwardclock path the path from the input nodes 14, 16 to the output of thebuffer 40). Specifically, the clock generator circuit 150 may use ananalog delay line 160 that includes a DCC adjusting differentialamplifier 170 in one of its delay stages. In the embodiment of FIG. 3,the DCC adjusting differential amplifier 170 may be used in the lastdelay stage. However, in other embodiments, the DCC adjustingdifferential amplifier 170 may be used in other stages. Also, in theembodiment of FIG. 3, a single DCC adjusting differential amplifier 170may be used. In other embodiments, two or more DCC adjustingdifferential amplifiers may be used, and they may be controlled from thesame of different DCC Detect & Control circuits 120.

The DCC adjusting differential amplifiers 110, 170 used in the clockgenerator circuit embodiments of FIGS. 2 and 3, respectively, may adjustthe duty cycle using a variety of techniques. However, in oneembodiment, the differential amplifiers 110, 170 may adjust the dutycycle of the received clock signal by adjusting the switch points ofcircuits used in the differential amplifier. One embodiment of a DCCadjusting differential amplifier 200 is shown in FIG. 4. Thedifferential amplifier 200 may include a pair of differential NMOS inputtransistors 210, 214 having respective gates coupled to receivecomplementary input signals In, InF, respectively. The sources of thetransistors 210, 214 may be coupled to a current source, such as an NMOScurrent sink transistor 220 that receives a bias voltage V_(B) tocontrol the total current flow through the transistors 210, 214. Thedrains of the transistors 210, 214 may be coupled to a supply voltageV_(CC) through respective loads 230, 234 Complementary output signalsOut, OutF are provided at a node between the transistor 210 and the load230 and at a node between the transistor 214 and the load 234,respectively.

As explained so far the differential amplifier 200 would toggleresponsive to the In and InF signals, and if the electricalcharacteristics of the transistors 210, 214 were identical, the dutycycle of each of the output signals would be a constant 50%. However, anNMOS duty cycle adjusting transistor 240 may be coupled in parallel withthe input transistor 214 to adjust the duty cycle of the output signalsOut. OutF above and below 50% as shown in FIG. 5. The transistor 240receives a duty cycle adjustment voltage Vdty to adjust the duty cycleof the output signals Out and OutF. In one embodiment, the effectivewidth-to-length ratio of the combined transistors 214, 240 may besubstantially equal to the width-to-length ratio of the transistor 210when the magnitude of the adjustment voltage Vdty is one-half the supplyvoltage V_(CC). As further shown in FIG. 5, an increase in the voltageVdty may increase the effective width-to-length ratio of the combinedtransistors 214, 240 so that the switch points used to generate the OutFsignal are at a lower level of InF, thereby adjusting the duty cycle.Conversely, a decrease in the voltage Vdty may decrease the effectivewidth-to-length ratio of the combined transistors 214, 240 so that theswitch points used to generate the OutF signal are at a higher level ofInF.

Another embodiment of a DCC adjusting differential amplifier 250 isshown in FIG. 6. The amplifier 250 may include many of the samecomponents that are in the amplifier 200 of FIG. 4, so that the samereference numerals will be used for those components, and a detailedexplanation of these common components will not be repeated. Theamplifier 250 differs from the amplifier 200 shown in FIG. 4 byincluding a NMOS duty cycle adjusting transistor 260 in parallel withthe input transistor 210. As a result, the effective width-to-lengthratio of the combined transistors 210, 260 may also be adjusted. Thegate of the transistor 260 receives a first duty cycle adjustmentvoltage FBF, and the gate of the transistor 240 receives a second dutycycle adjustment voltage FB, which may be the complement of the voltageFBF. By differentially varying the adjustment voltage FB and FBF, theduty cycle of the output signals Out and OutF may be adjusted from avalue, such as 50%, in either direction as shown in FIG. 7,

The differential amplifier 250 may not only be capable of adjusting theduty cycle of a signal, but it may also be capable of providing avariable gain. Specifically, if the magnitude of the adjustment voltagesFB and FBF are varied together rather than differentially, the gain ofthe amplifier 250 may also be adjusted. More specifically, as shown inFIG. 8, the gain of the amplifier 250 varies in linear inverseproportion to the magnitude of the adjustment voltages FB and FBF.

The differential amplifier 250 shown in FIG. 6 using, only a singleoutput Out may also be used to implement an input buffer with hysteresisfunctionality. As shown in FIG. 9, an input buffer 300 may include adifferential amplifier 250 (FIG. 6) in which the input nodes In, InF(FIG. 6) receive respective complementary Clk and ClkF signals from theinput nodes 14, 16. The input buffer 300 may also include a feedbackcircuit 304 that provides complementary feedback signals FB and FBF tothe inputs of the amplifier 250 to which the control signals FB and FBFwere applied in the embodiment of FIG. 6. The feedback circuit 304 mayinclude an inverter 310 through which an output signal Out from theamplifier 250 may be coupled to provide the feedback signal FB, and itmay include an additional inverter 314 through which the feedback signalFB may be coupled to provide the feedback signal FBF. Insofar as the Outsignal may be in phase with the Clk signal and out of phase with theClkF signal, the feedback signal FBF may be substantially in phase withthe output signal Out, and the feedback signal FB may be substantiallyout of phase with the output signal Out.

The ClK signal may be applied to the gate of the transistor 210 (FIG.6), the FBF signal may be applied to the gate of the transistor 260, theClkF signal may be applied to the gate of the transistor 214, and the FBsignal may be applied to the gate of the transistor 240. In thisconfiguration, the input to which the FB signal is applied isfunctionally in parallel with the ClkF signal, and the input to whichthe FBF signal is applied is functionally in parallel with the Clksignal. Insofar as FBF transitions high responsive to Clk transitioninghigh, and FB transitions low responsive to ClkF transitioning low, theFB and FBF signals may provide positive feedback to the input buffer300.

In operation, the feedback signals FB, FBF may adjust (e.g., alter) theswitch points of the differential amplifier 250 so that, which switchingin each direction responsive to corresponding changes in the Clk andClkF signals, the Clk and ClkF signals would have to change back beyondthe switch point to switch the differential amplifier 250 back to itsearlier state. For example, when the Clk signal transitions high beyondV_(CC)/2 and the ClkF signal transitions low beyond V_(CC)/2 the outputsignal Out from the differential amplifier 250 may transition high,thereby transitioning, the FB signal low and the FBF signal high. Thehigh FBF signal increases the current flowing through the load 230 sothat a Clk signal of less than VCC/2 would then be required to cause thetransistor 210 to switch state. Similarly, the low FB signal decreasesthe current flowing through the load 234 so that a ClkF signal ofgreater than VCC/2 would then be required to transition the outputsignal Out low. Thus, the high feedback signal FBF has the effect ofdecreasing the low switch point of the transistor 210 below V_(CC)/2,and the low FB signal has the effect of increasing the high switch pointof the transistor 214 above V_(CC)/2. As a result, the Clk signal wouldhave to transition low beyond V_(CC)/2 and the ClkF signal would have totransitions high beyond V_(CC)/2 for the output signal Out to beswitched back to a low level. The input buffer 300 responds in a similarmanner for transitions of the Clk signal transitions low and transitionsof the ClkF signal high.

Although the embodiment of the differential amplifier 250 used in theinput buffer 300 has a single output Out, other embodiments of adifferential amplifier used in an input buffer having hysteresis mayprovide two output signals Out and OutF as shown in FIG. 6. In suchcase, topologies other than that shown in FIG. 9 may be used. Forexample, it may be possible to eliminate one or both of the inverters310, 314 by coupling the output signal Out directly to the gate of thetransistor 260 and coupling the output signal OutF directly to the gateof the transistor 240.

Another embodiment of a differential amplifier 350 is shown in FIG. 10.The differential amplifier may be identical to the differentialamplifier 250 shown in FIG. 6 except that it may include an additionalNMOS transistor 360 in parallel with the transistors 260 210, and anadditional NMOS transistor 364 in parallel with the transistors 214,240. The gate of the transistor 360 may receive a control signal VDty1,and the gate of the transistor 364 may receive a control signal VDty2.The control signals VDty1, VDty2 may be adjusted (e.g., altered) toadjust the gain of the differential amplifier 350.

With additional reference to FIG. 11, The differential amplifier 350 maybe used to implement an input buffer 400 as shown therein by coupling,the output signal Out through the inverter 310 to generate the FBsignal, which is applied to the gate of the transistor 240, and bycoupling the feedback signal FB through the inverter 314 to generate theFBF signal, which is applied to the gate of the transistor 260. As aresult, the duty cycle and gain of the input buffer 400 may be adjustedas explained above, and the input buffer 400 may have a hysteresisfunction.

As with the differential amplifier 250 used in the embodiment of theinput buffer 300, the embodiment of the differential amplifier 350 usedin the input buffer 400 has a single output Out. However, otherembodiments of a differential amplifier used in an input buffer havinghysteresis and an adjustable duty cycle and gain may provide two outputsignals Out and OutF as shown in FIG. 6.

Although the present invention has been described with reference to thedisclosed embodiments, persons skilled in the art will recognize thatchanges may be made in form and detail without departing from theinvention. Such modifications are well within the skill of thoseordinarily skilled in the art. Accordingly, the invention is not limitedexcept as by the appended claims.

What is claimed:
 1. A clock generator, comprising: an input buffer configured to receive a clock signal at a signal input node and to output the clock signal at an output node; a delay line including an input node coupled to the output node of the input buffer, an output node, and a duty cycle control node, the delay line being configured to be responsive to a duty cycle control signal applied to the duty cycle control node to adjust a duty cycle of the clock signal being coupled through the delay line, wherein the delay line further comprises a gain control node, and wherein the delay line is configured to have a gain that is adjustable responsive to a signal applied to the gain control node; a phase detector having a first input node coupled to the signal output node of the delay line, a second input node coupled to receive the clock signal applied to the signal input node of the input buffer, and an output node, the phase detector being configured to adjust a delay of delay line based on a phase difference between a signal applied to the first input node and the clock signal applied to the second input node; and a duty cycle control circuit having an input node coupled to the output node of the delay line and an output node coupled to the duty cycle control node of the delay line, the duty cycle control circuit being configured to provide at the output node the duty cycle control signal corresponding to the duty cycle of the clock signal being coupled through the delay line from the input node of the delay line to the output node of the delay line.
 2. The clock generator of claim 1, wherein the input node of the delay line comprises a first input node and the output node of the delay line comprises a second output node, and wherein the delay line further comprises a second input node coupled to the output node of the input buffer and a second output node, the delay line being configured to be responsive to the duty cycle control signal applied to the duty cycle control node to adjust a duty cycle of a clock signal being coupled through the delay line from the second input node of the delay line to the second output node of the delay line.
 3. The clock generator of claim 2, wherein the delay line is configured to be responsive to the duty cycle control signal applied to the duty cycle control node of the delay line to adjust a duty cycle of the clock signal coupled from the first signal input node to the first signal output node in inverse proportion to the adjusting of the duty cycle of the clock signal coupled from the second signal input node to the second signal output node.
 4. The clock generator of claim 1, further comprising a model delay circuit coupled between the output node of the delay line and the input node of the duty cycle control circuit.
 5. The clock generator of claim 4, wherein the model delay is further coupled between the output node of the delay line and the first input node of the phase detector.
 6. The clock generator of claim 1, wherein the signal input node of the input buffer comprises a first signal input node, and the signal output node of the input buffer comprises a first signal output node, and wherein the input buffer further comprises a second signal input node and a second signal output node.
 7. The clock generator of claim 1, wherein the delay line comprises a delay stage that includes a differential amplifier, and wherein the differential amplifier is configured to be responsive to the duty cycle control signal.
 8. A method, comprising: coupling a first signal through a delay line; examining a duty cycle of a second signal at an output of the delay line; and before or during coupling the first signal through the delay line: adjusting, based on the examination, the duty cycle of the first signal by adjusting a switch point of a circuit through which the first signal is coupled; and adjusting the gain of the circuit.
 9. The method of claim 8, further comprising an input buffer through which the signal is coupled prior to being coupled through the delay line, and wherein the act of adjusting the duty cycle of the signal based on the examination comprises adjusting the duty cycle of the signal in the input buffer.
 10. The method of claim 8, wherein the act of adjusting the duty cycle of the signal based on the examination comprises adjusting the duty cycle of the signal in the delay line.
 11. The method of claim 10, wherein the delay line comprises an analog delay line having a plurality of analog delay stages, and wherein the act of adjusting the duty cycle of the signal comprises adjusting a switch point of one of the analog delay stages.
 12. An apparatus, comprising: a delay line configured to receive an input signal and to provide an output signal that is delayed relative to the input signal, the delay line configured to adjust a duty cycle of the input signal to provide the output signal, wherein the delay line comprises a differential amplifier circuit and a feedback circuit, wherein the feedback circuit is configured to provide a feedback signal to the differential amplifier circuit, wherein the differential amplifier circuit is configured to adjust the duty cycle of the input signal to provide the output signal based on the feedback signal; and a duty cycle control circuit configured to control adjustment of the duty cycle of the input signal through the delay line based on a duty cycle of the output signal delayed through a feedback model circuit.
 13. The apparatus of claim 12, wherein the feedback circuit comprises an inverter coupled between an output node of the differential amplifier and an input node of the differential amplifier and configured to provide an inverted output signal from the output node to the input node.
 14. The apparatus of claim 12, wherein the differential amplifier comprises: a first transistor configured to receive the input signal at a first gate; a second transistor configured to receive a second input signal at a second gate, wherein the second input signal is complementary to the input signal received at the first gate; a third transistor configured to receive a control signal from the duty cycle control circuit at a third gate, wherein the adjustment of the duty cycle of the input signal is based on a value of the control signal, wherein the output signal is provided at a node coupled to the second transistor and the third transistor.
 15. The apparatus of claim 14, wherein the control signal is a first control signal, wherein the differential amplifier further comprises a fourth transistor configured to receive a second control signal at a fourth gate, wherein the second control signal is complementary to the control signal received at the third gate, and wherein the adjustment of the duty cycle of the input signal is further based on a value of the second control signal.
 16. An apparatus, comprising: a delay line configured to receive an input signal and to provide an output signal that is delayed relative to the input signal, the delay line configured to adjust a duty cycle of the input signal to provide the output signal, wherein the delay line comprises a differential amplifier circuit that is configured to adjust the duty cycle of the input signal to provide the output signal, wherein the differential amplifier comprises: a first transistor configured to receive the input signal at a first gate; a second transistor configured to receive a second input signal at a second gate, wherein the second input signal is complementary to the input signal received at the first gate; a third transistor configured to receive a first control signal from the duty cycle control circuit at a third gate, wherein the adjustment of the duty cycle of the input signal is based on a value of the first control signal, wherein the output signal is provided at a node coupled to the second transistor and the third transistor; a fourth transistor configured to receive a second control signal at a fourth gate, wherein the second control signal is complementary to the control signal received at the third gate, and wherein the adjustment of the duty cycle of the input signal is further based on a value of the second control signal; a fifth transistor configured to receive a first feedback signal at a fifth gate, wherein the first feedback signal is based on the output signal; and a sixth transistor configured to receive a second feedback signal at a sixth gate, wherein the second feedback signal is complementary to the first feedback signal, wherein the adjustment of the duty cycle of the input signal is further based on values of the first feedback signal and the second feedback signal; and a duty cycle control circuit configured to control adjustment of the duty cycle of the input signal through the delay line based on a duty cycle of the output signal delayed through a feedback model circuit. 